A mitochondrial implication in a Tunisian patient with Friedreich's ataxia-like

M Maalej1, E Mkaouar-Rebai1, M Mnif2

  • 1Laboratoire de génétique moléculaire humaine, faculté de médecine de Sfax, avenue Magida Boulila, 3029 Sfax, Tunisia.

Pathologie-Biologie
|September 10, 2013
PubMed

Insights

Mitochondrial DNA variations, not FXN gene mutations, may cause Friedreich

Area of Science:

  • Genetics
  • Molecular Biology
  • Neuroscience

Background:

  • Friedreich's ataxia (FRDA) is typically linked to FXN gene GAA repeat expansions.
  • Mitochondrial DNA (mtDNA) dysfunction is implicated in FRDA pathogenesis due to oxidative stress.
  • Genes like TWINKLE and POLG are crucial for mtDNA replication and linked to mitochondrial disorders.

Observation:

  • A Tunisian patient presented with Friedreich's ataxia-like symptoms.
  • Screening excluded GAA repeat expansion in the FXN gene.
  • Analysis revealed intronic polymorphisms in FXN, POLG1, and C10orf2, and known mtDNA variations.

Findings:

  • Specific mtDNA D-loop variations (m.16187C>T and m.16189T>C) were identified.
  • These variations alter the cytosine homopolymeric tract, potentially disrupting mtDNA replication.
  • No mitochondrial deletions were found in the patient.

Implications:

  • These mtDNA D-loop variations may cause mitochondrial dysfunction.
  • The identified variations could explain the Friedreich's ataxia-like phenotype in the absence of FXN mutations.
  • This suggests mtDNA variations are a potential cause of FRDA-like conditions.

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